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Graphene oxide electrochemistry: the electrochemistry of graphene oxide modified electrodes reveals coverage dependent beneficial electrocatalysis

机译:氧化石墨烯电化学:氧化石墨烯修饰电极的电化学显示覆盖率依赖性有益的电催化

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摘要

The modification of electrode surfaces is widely implemented in order to try and improve electron transfer kinetics and surface interactions, most recently using graphene related materials. Currently, the use of ‘as is’ graphene oxide (GO) has been largely overlooked, with the vast majority of researchers choosing to reduce GO to graphene or use it as part of a composite electrode. In this paper, ‘as is’ GO is explored and electrochemically characterized using a range of electrochemical redox probes, namely potassium ferrocyanide(II), N,N,N′,N′-tetramethyl-p-phenylenediamine (TMPD), dopamine hydrochloride and epinephrine. Furthermore, the electroanalytical efficacy of GO is explored towards the sensing of dopamine hydrochloride and epinephrine via cyclic voltammetry. The electrochemical response of GO is benchmarked against pristine graphene and edge plane-/basal plane pyrolytic graphite (EPPG and BPPG respectively) alternatives, where the GO shows an enhanced electrochemical/electroanalytical response. When using GO as an electrode material, the electrochemical response of the analytes studied herein deviate from that expected and exhibit altered electrochemical responses. The oxygenated species encompassing GO strongly influence and dominate the observed voltammetry, which is crucially coverage dependent. GO electrocatalysis is observed, which is attributed to the presence of beneficial oxygenated species dictating the response in specific cases, demonstrating potential for advantageous electroanalysis to be realized. Note however, that crucial coverage based regions are observed at GO modified electrodes, owing to the synergy of edge plane sites and oxygenated species. We report the true beneficial electrochemistry of GO, which has enormous potential to be beneficially used in various electrochemical applications ‘as is’ rather than be simply used as a precursor to making graphene and is truly a fascinating member of the graphene family.
机译:为了尝试和改善电子转移动力学和表面相互作用,电极表面的改性被广泛实施,最近使用了石墨烯相关材料。目前,“原样”氧化石墨烯(GO)的使用已被大大忽略,绝大多数研究人员选择将GO还原为石墨烯或将其用作复合电极的一部分。在本文中,使用一系列电化学氧化还原探针(即亚铁氰化钾(II),N,N,N',N'-四甲基-对苯二胺(TMPD),多巴胺盐酸盐)探索并按原样进行GO的电化学表征和肾上腺素。此外,还通过循环伏安法探索了GO的电分析功效,以检测多巴胺盐酸盐和肾上腺素。 GO的电化学响应是针对原始石墨烯和边缘平面/基面热解石墨(分别为EPPG和BPPG)替代品进行的基准测试,其中GO显示出增强的电化学/电分析响应。当使用GO作为电极材料时,本文研究的分析物的电化学响应偏离了预期,并表现出改变的电化学响应。包含GO的含氧物质强烈影响并主导着所观察到的伏安法,而伏安法至关重要。观察到GO电催化,这归因于有益的氧化物质的存在,决定了在特定情况下的响应,证明了实现有利的电分析的潜力。但是请注意,由于边缘平面位点和含氧物质的协同作用,在GO修饰电极上观察到了基于覆盖率的关键区域。我们报道了GO的真正有益的电化学,它具有巨大的潜力,可以按原样用于各种电化学应用中,而不是简单地用作制造石墨烯的前​​体,并且确实是石墨烯家族的迷人成员。

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